| 123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575576577578579580581582583584585586587588589590591592593594595596597598599600601602603604605606607608609610611612613614615616617618619620621622623624625626627628629630631632633634635636637638639640641642643644645646647648649650651652653654655656657658659660661662663664665666667668669670671672673674675676677678679680681682683684685686687688689690691692693694695696697698699700701702703704705706707708709710711712713714715716717718719720721722723724725726727728729730731732733734735736737738739740741742743744745746747748749750751752753754755756757758759760761762763764765766767768769770771772773774775776777778779780781782783784785786787788789790791792793794795796797798799800801802803804805806807808809810811812813814815816817818819820821822823824825826827828829830831832833834835836837838839840841842843844845846847848849850851852853854855856857858859860861862863864865866867868869870871872873874875876877878879880881882883884885886887888889890891892893894895896897898899900901902903904905906907908909910911912913914915916917918919920921922923924925926927928929930931932933934935936937938939940941942943944945946947948949950951952953954955956957958959960961962963964965966967968969970971972 | using System;using System.Collections.Generic;//using System.using Venus_RT.Devices;using Aitex.Core.RT.Log;using Venus_Core;using Aitex.Core.RT.SCCore;using Aitex.Core.RT.Tolerance;//#pragma warning disable 0436namespace Venus_RT.Modules.PMs{    class ProcessHelper    {        protected JetPMBase Chamber;        private string Module;        public RecipeHead m_RecipeHead;        private static Dictionary<string, Func<ProcessUnitBase, RecipeStep, RState>> startHelper = new Dictionary<string, Func<ProcessUnitBase, RecipeStep, RState>>();        private static Dictionary<string, Func<ProcessUnitBase, RecipeStep, RState>> checkerHelper = new Dictionary<string, Func<ProcessUnitBase, RecipeStep, RState>>();        private static Dictionary<string, Action<ProcessUnitBase, RecipeStep>> endHelper = new Dictionary<string, Action<ProcessUnitBase, RecipeStep>>();        private List<float> rfMatchC1 = new List<float>();        private List<float> rfMatchC2 = new List<float>();        private int rfMatchC1C2Index = 0;        private List<float> biasRfMatchC1 = new List<float>();        private List<float> biasRfMatchC2 = new List<float>();        private int biasRfMatchC1C2Index = 0;        public bool isLoop = false;        public int loopsteps = 0;        public int currentStepIndex = 0;        private bool biasRFSetPointFlag = true;        private double _scRFPowerAlarmTime;        private double _scBiasRFPowerAlarmTime;        private RecipeToleranceChecker _GasFlowToleranceChecker;        private RecipeToleranceChecker _RFToleranceChecker;        private RecipeToleranceChecker _BiasRFToleranceChecker;        private bool _isEnableMatchC1C2Offset;        private int _matchC1C2OffsetValue;        private bool _isEnableBiasMatchC1C2Offset;        private int _biasMatchC1C2OffsetValue;        public ProcessHelper(JetPMBase pm)        {            Chamber = pm;            Module = pm.Module.ToString();            Init();            _GasFlowToleranceChecker = new RecipeToleranceChecker(Module);            _RFToleranceChecker = new RecipeToleranceChecker(Module);            _BiasRFToleranceChecker = new RecipeToleranceChecker(Module);        }        private void Init()        {            startHelper[$"{Module}.PressureByPressureModeUnit"] = (ProcessUnitBase unit, RecipeStep step) => PressureByPressureModeUnit_Start(unit, step);            checkerHelper[$"{Module}.PressureByPressureModeUnit"] = (ProcessUnitBase unit, RecipeStep step) => PressureByPressureModeUnit_Check(unit, step);            endHelper[$"{Module}.PressureByPressureModeUnit"] = (ProcessUnitBase unit, RecipeStep step) => PressureByPressureModeUnit_End(unit, step);            //startHelper     [$"{Module}.PressureByValveModeUnit"]     = (ProcessUnitBase unit, RecipeStep step) => PressureByValveModeUnit_Start(unit, step);            //checkerHelper   [$"{Module}.PressureByValveModeUnit"]     = (ProcessUnitBase unit, RecipeStep step) => PressureByValveModeUnit_Check(unit, step);            //endHelper       [$"{Module}.PressureByValveModeUnit"]     = (ProcessUnitBase unit, RecipeStep step) => PressureByValveModeUnit_End(unit, step);            startHelper[$"{Module}.TCPUnit"] = (ProcessUnitBase unit, RecipeStep step) => TCPUnit_Start(unit, step);            checkerHelper[$"{Module}.TCPUnit"] = (ProcessUnitBase unit, RecipeStep step) => TCPUnit_Check(unit, step);            endHelper[$"{Module}.TCPUnit"] = (ProcessUnitBase unit, RecipeStep step) => TCPUnit_End(unit, step);            startHelper[$"{Module}.BiasUnit"] = (ProcessUnitBase unit, RecipeStep step) => BiasUnit_Start(unit, step);            checkerHelper[$"{Module}.BiasUnit"] = (ProcessUnitBase unit, RecipeStep step) => BiasUnit_Check(unit, step);            endHelper[$"{Module}.BiasUnit"] = (ProcessUnitBase unit, RecipeStep step) => BiasUnit_End(unit, step);            startHelper[$"{Module}.GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => GasControlUnit_Start(unit, step);            checkerHelper[$"{Module}.GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => GasControlUnit_Check(unit, step);            endHelper[$"{Module}.GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => GasControlUnit_End(unit, step);            startHelper[$"{Module}.VenusSEGasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => VenusSEGasControlUnit_Start(unit, step);            checkerHelper[$"{Module}.VenusSEGasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => VenusSEGasControlUnit_Check(unit, step);            endHelper[$"{Module}.VenusSEGasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => VenusSEGasControlUnit_End(unit, step);            startHelper[$"{Module}.ESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => ESCHVUnit_Start(unit, step);            checkerHelper[$"{Module}.ESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => ESCHVUnit_Check(unit, step);            endHelper[$"{Module}.ESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => ESCHVUnit_End(unit, step);            startHelper[$"{Module}.SEESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => SEESCHVUnit_Start(unit, step);            checkerHelper[$"{Module}.SEESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => SEESCHVUnit_Check(unit, step);            endHelper[$"{Module}.SEESCHVUnit"] = (ProcessUnitBase unit, RecipeStep step) => SEESCHVUnit_End(unit, step);            startHelper[$"{Module}.ProcessKitUnit"] = (ProcessUnitBase unit, RecipeStep step) => ProcessKitUnit_Start(unit, step);            checkerHelper[$"{Module}.ProcessKitUnit"] = (ProcessUnitBase unit, RecipeStep step) => ProcessKitUnit_Check(unit, step);            endHelper[$"{Module}.ProcessKitUnit"] = (ProcessUnitBase unit, RecipeStep step) => ProcessKitUnit_End(unit, step);            startHelper[$"{Module}.Kepler2200GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => Kepler2200GasControlUnit_Start(unit, step);            checkerHelper[$"{Module}.Kepler2200GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => Kepler2200GasControlUnit_Check(unit, step);            endHelper[$"{Module}.Kepler2200GasControlUnit"] = (ProcessUnitBase unit, RecipeStep step) => Kepler2200GasControlUnit_End(unit, step);            startHelper[$"{Module}.HeaterUnit"] = (ProcessUnitBase unit, RecipeStep step) => HeaterUnit_Start(unit, step);            checkerHelper[$"{Module}.HeaterUnit"] = (ProcessUnitBase unit, RecipeStep step) => HeaterUnit_Check(unit, step);            endHelper[$"{Module}.HeaterUnit"] = (ProcessUnitBase unit, RecipeStep step) => HeaterUnit_End(unit, step);            startHelper[$"{Module}.RFBoxUnit"] = (ProcessUnitBase unit, RecipeStep step) => RFBoxUnit_Start(unit, step);            checkerHelper[$"{Module}.RFBoxUnit"] = (ProcessUnitBase unit, RecipeStep step) => RFBoxUnit_Check(unit, step);            endHelper[$"{Module}.RFBoxUnit"] = (ProcessUnitBase unit, RecipeStep step) => RFBoxUnit_End(unit, step);        }        private RState PressureByPressureModeUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as PressureByPressureModeUnit;            if (ProcessUnit.PressureUnitMode == PressureUnitMode.Pressure)            {                if (Chamber.SetPVPressure(ProcessUnit.StartValue))                {                    return RState.Running;                }            }            else if (ProcessUnit.PressureUnitMode == PressureUnitMode.Valve)            {                if (Chamber.SetPVPostion(ProcessUnit.StartValue))                {                    return RState.Running;                }            }            return RState.Failed;        }        private RState PressureByPressureModeUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as PressureByPressureModeUnit;            if (ProcessUnit.EnableRamp)            {                if (ProcessUnit.PressureUnitMode == PressureUnitMode.Pressure)                {                    if (Chamber.SetPVPressure(ProcessUnit.StartValue + (int)((ProcessUnit.TargetValue - ProcessUnit.StartValue) * step.RampFactor())))                        return RState.Running;                    else                        return RState.Failed;                }                else if (ProcessUnit.PressureUnitMode == PressureUnitMode.Valve)                {                    if (Chamber.SetPVPostion(ProcessUnit.StartValue + (int)((ProcessUnit.TargetValue - ProcessUnit.StartValue) * step.RampFactor())))                        return RState.Running;                    else                        return RState.Failed;                }            }            if (ProcessUnit.PressureUnitMode == PressureUnitMode.Pressure)            {                if (step.Type == StepType.Stable && Chamber.ChamberPressure == ProcessUnit.StartValue)                {                    return RState.End;                }            }            else if (ProcessUnit.PressureUnitMode == PressureUnitMode.Valve)            {                if (step.Type == StepType.Stable && Chamber.GetPVPosition() == ProcessUnit.StartValue)                {                    return RState.End;                }            }            return RState.Running;        }        private void PressureByPressureModeUnit_End(ProcessUnitBase unit, RecipeStep step)        {        }        private RState TCPUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            _isEnableMatchC1C2Offset = SC.GetValue<bool>($"{Module}.Match.EnableC1C2StepOffset");            _matchC1C2OffsetValue = SC.GetValue<int>($"{Module}.Match.C1C2StepOffsetValue");            var ProcessUnit = unit as TCPUnit;            List<ToleranceObject> toleranceObjects = new List<ToleranceObject>();            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                toleranceObjects.Add(new ToleranceObject("RF", ProcessUnit.RFPower, ProcessUnit.RFPowerWarningRange, ProcessUnit.RFPowerAlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                _RFToleranceChecker.Start(toleranceObjects);            }            float p1;            float p2;            if (ProcessUnit.C1 > 0)            {                p1 = ProcessUnit.C1;            }            else            {                p1 = ProcessUnit.AutoC1;            }            if (ProcessUnit.C2 > 0)            {                p2 = ProcessUnit.C2;            }            else            {                p2 = ProcessUnit.AutoC2;            }            if (_isEnableMatchC1C2Offset = false || Math.Abs(Chamber.RFMatchC1 - p1) > _matchC1C2OffsetValue || Math.Abs(Chamber.RFMatchC2 - p2) > _matchC1C2OffsetValue)            {                Chamber.SetMatchPosition(p1, p2);            }            if (ProcessUnit.RFPower > 5)            {                Chamber.GeneratorSetpower(ProcessUnit.RFPower);                Chamber.GeneratorPowerOn(true);            }            else            {                Chamber.GeneratorSetpower(0);                Chamber.GeneratorPowerOn(false);            }            if (ProcessUnit.MatchWorkMode == MatchWorkMode.Auto)            {                Chamber.SetMatchWorkMode(MatchWorkMode.Auto);            }            else if (ProcessUnit.MatchWorkMode == MatchWorkMode.Manual)            {                Chamber.SetMatchWorkMode(MatchWorkMode.Manual);            }            _scRFPowerAlarmTime = SC.GetValue<double>($"{Chamber.Name}.Rf.PowerAlarmTime");            rfMatchC1.Clear();            rfMatchC1.Clear();            rfMatchC1C2Index = 0;            return RState.Running;        }        private RState TCPUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as TCPUnit;            if (ProcessUnit.MaxReflectedPower > 0 && Chamber.ReflectPower > ProcessUnit.MaxReflectedPower && step.ElapsedTime() > _scRFPowerAlarmTime * 1000)            {                LOG.Write(eEvent.ERR_PROCESS, Chamber.Module, $"Step:{step.StepNo} failed, RF Reflect Power:{Chamber.ReflectPower} exceeds the Max Limit:{ProcessUnit.MaxReflectedPower}");                return RState.Failed;            }            if (step.ElapsedTime() > m_RecipeHead.RFHoldTime * 1000)            {                Chamber.GeneratorSetpower(0);                Chamber.GeneratorPowerOn(false);            }            if (step.ElapsedTime() > rfMatchC1C2Index * 1000)            {                rfMatchC1.Add(Chamber.RFMatchC1);                rfMatchC2.Add(Chamber.RFMatchC2);                rfMatchC1C2Index += 1;            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _RFToleranceChecker.Monitor(Chamber.ForwardPower);            }            return RState.Running;        }        private void TCPUnit_End(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as TCPUnit;            if (rfMatchC1.Count >= 6)            {                float allValue = 0;                for (int i = 4; i < rfMatchC1.Count; i++)                {                    allValue += rfMatchC1[i];                }                var average = allValue / (rfMatchC1.Count - 4);                ProcessUnit.AutoC1 = (int)average;            }            if (rfMatchC2.Count >= 6)            {                float allValue = 0;                for (int i = 4; i < rfMatchC2.Count; i++)                {                    allValue += rfMatchC2[i];                }                var average = allValue / (rfMatchC2.Count - 4);                ProcessUnit.AutoC2 = (int)average;            }            rfMatchC1.Clear();            rfMatchC2.Clear();            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _RFToleranceChecker.End();            }        }        private RState BiasUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            _isEnableBiasMatchC1C2Offset = SC.GetValue<bool>($"{Module}.BiasMatch.EnableC1C2StepOffset");            _biasMatchC1C2OffsetValue = SC.GetValue<int>($"{Module}.BiasMatch.C1C2StepOffsetValue");            var ProcessUnit = unit as BiasUnit;            float p1;            float p2;            if (ProcessUnit.BiasC1 > 0)            {                p1 = ProcessUnit.BiasC1;            }            else            {                p1 = ProcessUnit.AutoBiasC1;            }            if (ProcessUnit.BiasC2 > 0)            {                p2 = ProcessUnit.BiasC2;            }            else            {                p2 = ProcessUnit.AutoBiasC2;            }            if (_isEnableBiasMatchC1C2Offset == false || Math.Abs(Chamber.BiasRFMatchC1 - p1) > _biasMatchC1C2OffsetValue || Math.Abs(Chamber.BiasRFMatchC2 - p2) > _biasMatchC1C2OffsetValue)            {                Chamber.SetBiasMatchPosition(p1, p2);            }            if (ProcessUnit.BiasRFPower > 5)            {                Chamber.GeneratorBiasPowerOn(true);                if ((ProcessUnit.EnableRamp == false))                {                    Chamber.GeneratorBiasSetpower(ProcessUnit.BiasRFPower);                }            }            else            {                Chamber.GeneratorBiasPowerOn(false);                Chamber.GeneratorBiasSetpower(0);            }            if (ProcessUnit.BiasMatchWorkMode == MatchWorkMode.Auto)            {                Chamber.SetBiasMatchWorkMode(MatchWorkMode.Auto);            }            else if (ProcessUnit.BiasMatchWorkMode == MatchWorkMode.Manual)            {                Chamber.SetBiasMatchWorkMode(MatchWorkMode.Manual);            }            if (ProcessUnit.BiasGeneratorMode == GeneratorMode.Pulsing)            {                Chamber.SetBiasPulseMode(true);                Chamber.SetBiasPulseRateFreq(ProcessUnit.PulseRateFreq);                Chamber.SetDiasPulseDutyCycle(ProcessUnit.PulseDutyCycle);            }            else            {                Chamber.SetBiasPulseMode(false);            }            _scBiasRFPowerAlarmTime = SC.GetValue<double>($"{Chamber.Name}.BiasRf.PowerAlarmTime");            biasRfMatchC1.Clear();            biasRfMatchC1.Clear();            biasRfMatchC1C2Index = 0;            biasRFSetPointFlag = true;            return RState.Running;        }        private RState BiasUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            //var _scPowerAlarmTime = SC.GetValue<double>($"{Chamber.Name}.BiasRf.PowerAlarmTime");            var ProcessUnit = unit as BiasUnit;            if (ProcessUnit.BiasMaxReflectedPower > 0 && Chamber.BiasReflectPower > ProcessUnit.BiasMaxReflectedPower && step.ElapsedTime() > _scBiasRFPowerAlarmTime * 1000)            {                LOG.Write(eEvent.ERR_PROCESS, Chamber.Module, $"Step:{step.StepNo} failed, Bias Reflect Power:{Chamber.BiasReflectPower} exceeds the Max Limit:{ProcessUnit.BiasMaxReflectedPower}");                return RState.Failed;            }            if (step.ElapsedTime() > m_RecipeHead.BiasRFHoldTime * 1000)            {                Chamber.GeneratorBiasSetpower(0);                Chamber.GeneratorBiasPowerOn(false);            }            if (step.ElapsedTime() > biasRfMatchC1C2Index * 1000)            {                biasRfMatchC1.Add(Chamber.BiasRFMatchC1);                biasRfMatchC2.Add(Chamber.BiasRFMatchC2);                biasRfMatchC1C2Index += 1;            }            if (ProcessUnit.EnableRamp)            {                //if (step.ElapsedTime() <= 500*cycleIndex)                //{                //    return RState.Running;                //}                //cycleIndex += 1;                if (ProcessUnit.TargetMode == TargetMode.Cycle)                {                    if (biasRFSetPointFlag == true)                    {                        biasRFSetPointFlag = false;                        Chamber.GeneratorBiasSetpower((float)((ProcessUnit.BiasRFPower + (float)((float)(ProcessUnit.TargetBiasRFPower - ProcessUnit.BiasRFPower) / ((float)(loopsteps - 1) / (float)(currentStepIndex))))));                    }                    //float rampFactor = (float)currentStepIndex / (float)(loopsteps-1);                    //double rampFactor = step.RampFactor();                                                     //Chamber.GeneratorBiasSetpower((float)((ProcessUnit.BiasRFPower+  (ProcessUnit.TargetBiasRFPower - ProcessUnit.BiasRFPower)/(loopsteps)*currentStepIndex) +  ((double)(ProcessUnit.TargetBiasRFPower - ProcessUnit.BiasRFPower) / ((double)loopsteps)) * rampFactor));                }                else                {                    //double rampFactor = step.RampFactor();                                     //Chamber.GeneratorBiasSetpower((float)(ProcessUnit.BiasRFPower + (ProcessUnit.TargetBiasRFPower - ProcessUnit.BiasRFPower) * rampFactor));                }            }            return RState.Running;        }        private void BiasUnit_End(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as BiasUnit;            //Chamber.GeneratorBiasSetpower(0);            //Chamber.GeneratorBiasPowerOn(false);            if (biasRfMatchC1.Count >= 6)            {                float allValue = 0;                for (int i = 4; i < biasRfMatchC1.Count; i++)                {                    allValue += biasRfMatchC1[i];                }                var average = allValue / (biasRfMatchC1.Count - 4);                ProcessUnit.AutoBiasC1 = (int)average;            }            if (biasRfMatchC2.Count >= 6)            {                float allValue = 0;                for (int i = 4; i < biasRfMatchC2.Count; i++)                {                    allValue += biasRfMatchC2[i];                }                var average = allValue / (biasRfMatchC2.Count - 4);                ProcessUnit.AutoBiasC2 = (int)average;            }            biasRfMatchC1.Clear();            biasRfMatchC1.Clear();            biasRfMatchC1C2Index = 0;            //cycleIndex = 0;            biasRFSetPointFlag = true;        }        private RState GasControlUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            List<ToleranceObject> toleranceObjects = new List<ToleranceObject>();            Chamber.OpenValve(ValveType.GasFinal, true);            var ProcessUnit = unit as GasControlUnit;            if (ProcessUnit.Gas1 >= 1)            {                Chamber.FlowGas(0, ProcessUnit.Gas1);            }            else            {                Chamber.FlowGas(0, 0);            }            if (ProcessUnit.Gas2 >= 1)            {                Chamber.FlowGas(1, ProcessUnit.Gas2);            }            else            {                Chamber.FlowGas(1, 0);            }            if (ProcessUnit.Gas3 >= 1)            {                Chamber.FlowGas(2, ProcessUnit.Gas3);            }            else            {                Chamber.FlowGas(2, 0);            }            if (ProcessUnit.Gas4 >= 1)            {                Chamber.FlowGas(3, ProcessUnit.Gas4);            }            else            {                Chamber.FlowGas(3, 0);            }            if (ProcessUnit.Gas5 >= 1)            {                Chamber.FlowGas(4, ProcessUnit.Gas5);            }            else            {                Chamber.FlowGas(4, 0);            }            if (ProcessUnit.Gas6 >= 1)            {                Chamber.FlowGas(5, ProcessUnit.Gas6);            }            else            {                Chamber.FlowGas(5, 0);            }            if (ProcessUnit.Gas7 >= 1)            {                Chamber.FlowGas(6, ProcessUnit.Gas7);            }            else            {                Chamber.FlowGas(6, 0);            }            if (ProcessUnit.Gas8 >= 1)            {                Chamber.FlowGas(7, ProcessUnit.Gas8);            }            else            {                Chamber.FlowGas(7, 0);            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                toleranceObjects.Add(new ToleranceObject("Gas1", ProcessUnit.Gas1, ProcessUnit.Gas1WarningRange, ProcessUnit.Gas1AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas2", ProcessUnit.Gas2, ProcessUnit.Gas2WarningRange, ProcessUnit.Gas2AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas3", ProcessUnit.Gas3, ProcessUnit.Gas3WarningRange, ProcessUnit.Gas3AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas4", ProcessUnit.Gas4, ProcessUnit.Gas4WarningRange, ProcessUnit.Gas4AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas5", ProcessUnit.Gas5, ProcessUnit.Gas5WarningRange, ProcessUnit.Gas5AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas6", ProcessUnit.Gas6, ProcessUnit.Gas6WarningRange, ProcessUnit.Gas6AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas7", ProcessUnit.Gas7, ProcessUnit.Gas7WarningRange, ProcessUnit.Gas7AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas8", ProcessUnit.Gas8, ProcessUnit.Gas8WarningRange, ProcessUnit.Gas8AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.Start(toleranceObjects);            }            return RState.Running;        }        private RState GasControlUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as GasControlUnit;            if (ProcessUnit.EnableRamp)            {                double rampFactor = step.RampFactor();                Chamber.FlowGas(0, ProcessUnit.Gas1 + (ProcessUnit.Gas1Target - ProcessUnit.Gas1) * rampFactor);                Chamber.FlowGas(1, ProcessUnit.Gas2 + (ProcessUnit.Gas2Target - ProcessUnit.Gas2) * rampFactor);                Chamber.FlowGas(2, ProcessUnit.Gas3 + (ProcessUnit.Gas3Target - ProcessUnit.Gas3) * rampFactor);                Chamber.FlowGas(3, ProcessUnit.Gas4 + (ProcessUnit.Gas4Target - ProcessUnit.Gas4) * rampFactor);                Chamber.FlowGas(4, ProcessUnit.Gas5 + (ProcessUnit.Gas5Target - ProcessUnit.Gas5) * rampFactor);                Chamber.FlowGas(5, ProcessUnit.Gas6 + (ProcessUnit.Gas6Target - ProcessUnit.Gas6) * rampFactor);                Chamber.FlowGas(6, ProcessUnit.Gas7 + (ProcessUnit.Gas7Target - ProcessUnit.Gas7) * rampFactor);                Chamber.FlowGas(7, ProcessUnit.Gas8 + (ProcessUnit.Gas8Target - ProcessUnit.Gas8) * rampFactor);            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.Monitor(Chamber.MFC1FeedBack, Chamber.MFC2FeedBack, Chamber.MFC3FeedBack, Chamber.MFC4FeedBack, Chamber.MFC5FeedBack, Chamber.MFC6FeedBack, Chamber.MFC7FeedBack, Chamber.MFC8FeedBack);            }            return RState.Running;        }        private void GasControlUnit_End(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as GasControlUnit;            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.End();            }        }        private RState Kepler2200GasControlUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            List<ToleranceObject> toleranceObjects = new List<ToleranceObject>();            Chamber.OpenValve(ValveType.GasFinal, true);            var ProcessUnit = unit as Kepler2200GasControlUnit;            if (ProcessUnit.Gas1 >= 1)            {                Chamber.FlowGas(0, ProcessUnit.Gas1);            }            else            {                Chamber.FlowGas(0, 0);            }            if (ProcessUnit.Gas2 >= 1)            {                Chamber.FlowGas(1, ProcessUnit.Gas2);            }            else            {                Chamber.FlowGas(1, 0);            }            if (ProcessUnit.Gas3 >= 1)            {                Chamber.FlowGas(2, ProcessUnit.Gas3);            }            else            {                Chamber.FlowGas(2, 0);            }            if (ProcessUnit.Gas4 >= 1)            {                Chamber.FlowGas(3, ProcessUnit.Gas4);            }            else            {                Chamber.FlowGas(3, 0);            }            if (ProcessUnit.Gas5 >= 1)            {                Chamber.FlowGas(4, ProcessUnit.Gas5);            }            else            {                Chamber.FlowGas(4, 0);            }            if (ProcessUnit.Gas6 >= 1)            {                Chamber.FlowGas(5, ProcessUnit.Gas6);            }            else            {                Chamber.FlowGas(5, 0);            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                toleranceObjects.Add(new ToleranceObject("Gas1", ProcessUnit.Gas1, ProcessUnit.Gas1WarningRange, ProcessUnit.Gas1AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas2", ProcessUnit.Gas2, ProcessUnit.Gas2WarningRange, ProcessUnit.Gas2AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas3", ProcessUnit.Gas3, ProcessUnit.Gas3WarningRange, ProcessUnit.Gas3AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas4", ProcessUnit.Gas4, ProcessUnit.Gas4WarningRange, ProcessUnit.Gas4AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas5", ProcessUnit.Gas5, ProcessUnit.Gas5WarningRange, ProcessUnit.Gas5AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));                toleranceObjects.Add(new ToleranceObject("Gas6", ProcessUnit.Gas6, ProcessUnit.Gas6WarningRange, ProcessUnit.Gas6AlarmRange, ProcessUnit.ToleranceDelayTime, ProcessUnit.ToleranceMode));            }            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.Start(toleranceObjects);            }            return RState.Running;        }        private RState Kepler2200GasControlUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as Kepler2200GasControlUnit;            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.Monitor(Chamber.MFC1FeedBack, Chamber.MFC2FeedBack, Chamber.MFC3FeedBack, Chamber.MFC4FeedBack, Chamber.MFC5FeedBack, Chamber.MFC6FeedBack);            }            return RState.Running;        }        private void Kepler2200GasControlUnit_End(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as Kepler2200GasControlUnit;            if (ProcessUnit.ToleranceMode != ToleranceMode.None)            {                _GasFlowToleranceChecker.End();            }        }        private RState VenusSEGasControlUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            Chamber.OpenValve(ValveType.GasFinal, true);            var ProcessUnit = unit as VenusSEGasControlUnit;            Chamber.FlowGas(0, ProcessUnit.Gas1);            if (ProcessUnit.Gas1 >= 1)            {                Chamber.OpenValve(ValveType.PV11, true);            }            Chamber.FlowGas(1, ProcessUnit.Gas2);            if (ProcessUnit.Gas2 >= 1)            {                Chamber.OpenValve(ValveType.PV21, true);            }            Chamber.FlowGas(2, ProcessUnit.Gas3);            if (ProcessUnit.Gas3 >= 1)            {                Chamber.OpenValve(ValveType.PV31, true);            }            Chamber.FlowGas(3, ProcessUnit.Gas4);            if (ProcessUnit.Gas4 >= 1)            {                Chamber.OpenValve(ValveType.PV41, true);            }            Chamber.FlowGas(4, ProcessUnit.Gas5);            if (ProcessUnit.Gas5 >= 1)            {                Chamber.OpenValve(ValveType.PV51, true);            }            Chamber.FlowGas(5, ProcessUnit.Gas6);            if (ProcessUnit.Gas6 >= 1)            {                Chamber.OpenValve(ValveType.PV61, true);            }            Chamber.FlowGas(6, ProcessUnit.Gas7);            if (ProcessUnit.Gas7 >= 1)            {                Chamber.OpenValve(ValveType.PV71, true);            }            Chamber.FlowGas(7, ProcessUnit.Gas8);            if (ProcessUnit.Gas8 >= 1)            {                Chamber.OpenValve(ValveType.PV81, true);            }            Chamber.FlowGas(8, ProcessUnit.Gas9);            if (ProcessUnit.Gas9 >= 1)            {                Chamber.OpenValve(ValveType.PV91, true);            }            Chamber.FlowGas(9, ProcessUnit.Gas10);            if (ProcessUnit.Gas10 >= 1)            {                Chamber.OpenValve(ValveType.PVA1, true);            }            Chamber.FlowGas(10, ProcessUnit.Gas11);            if (ProcessUnit.Gas11 >= 1)            {                Chamber.OpenValve(ValveType.PVB1, true);            }            Chamber.FlowGas(11, ProcessUnit.Gas12);            if (ProcessUnit.Gas12 >= 1)            {                Chamber.OpenValve(ValveType.PVC1, true);            }            return RState.Running;        }        private RState VenusSEGasControlUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            return RState.Running;        }        private void VenusSEGasControlUnit_End(ProcessUnitBase unit, RecipeStep step)        {            Chamber.FlowGas(0, 0);            Chamber.FlowGas(1, 0);            Chamber.FlowGas(2, 0);            Chamber.FlowGas(3, 0);            Chamber.FlowGas(4, 0);            Chamber.FlowGas(5, 0);            Chamber.FlowGas(6, 0);            Chamber.FlowGas(7, 0);            Chamber.FlowGas(8, 0);            Chamber.FlowGas(9, 0);            Chamber.FlowGas(10, 0);            Chamber.FlowGas(11, 0);            Chamber.FlowGas(12, 0);        }        private RState ESCHVUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as ESCHVUnit;            Chamber.SetESCClampVoltage(ProcessUnit.ESCClampValtage);            Chamber.SetBacksideHePressure(ProcessUnit.BacksideHelum);            Chamber.SetBacksideHeThreshold(ProcessUnit.MinHeFlow, ProcessUnit.MaxHeFlow);            return RState.Running;        }        private RState ESCHVUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as ESCHVUnit;            if (Chamber.BackSideHeOutOfRange && step.ElapsedTime() > ProcessUnit.CheckDelay)            {                LOG.Write(eEvent.ERR_PROCESS, Chamber.Module, $"Step:{step.StepNo} failed, Backside Helium out of range.");                return RState.Failed;            }            return RState.Running;        }        private void SEESCHVUnit_End(ProcessUnitBase unit, RecipeStep step)        {            //Chamber.SetESCClampVoltage(0);            Chamber.SESetBacksideHeThreshold(0, 0);        }        private RState SEESCHVUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as SEESCHVUnit;            Chamber.SetESCClampVoltage(ProcessUnit.ESCClampValtage);            Chamber.SetBacksideHePressure(ProcessUnit.BacksideHelum);            Chamber.SESetBacksideHeThreshold(ProcessUnit.MinHeFlow, ProcessUnit.MaxHeFlow);            return RState.Running;        }        private RState SEESCHVUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as SEESCHVUnit;            if (Chamber.BackSideHeOutOfRange && step.ElapsedTime() > ProcessUnit.CheckDelay_ms)            {                LOG.Write(eEvent.ERR_PROCESS, Chamber.Module, $"Step:{step.StepNo} failed, Backside Helium out of range.");                return RState.Failed;            }            return RState.Running;        }        private void ESCHVUnit_End(ProcessUnitBase unit, RecipeStep step)        {            Chamber.SetESCClampVoltage(0);            Chamber.SetBacksideHeThreshold(0, 0);        }        private RState ProcessKitUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as ProcessKitUnit;            if (Chamber.SetLiftPin(ProcessUnit.LiftPinPostion, out string reason))            {                return RState.Running;            }            else            {                LOG.Write(eEvent.ERR_PROCESS, Chamber.Module, $"Step:{step.StepNo} failed. Target Position:{ProcessUnit.LiftPinPostion}");                return RState.Failed;            }        }        private RState ProcessKitUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as ProcessKitUnit;            return RState.Running;        }        private void ProcessKitUnit_End(ProcessUnitBase unit, RecipeStep step)        {        }        private RState RFBoxUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as RFBoxUnit;            Chamber.SetRFBoxC1Position(ProcessUnit.C1);            return RState.Running;        }        private RState RFBoxUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            return RState.Running;        }        private void RFBoxUnit_End(ProcessUnitBase unit, RecipeStep step)        {        }        private RState HeaterUnit_Start(ProcessUnitBase unit, RecipeStep step)        {            var ProcessUnit = unit as HeaterUnit;            var position = (HighTemperatureHeaterPosition)Enum.Parse(typeof(HighTemperatureHeaterPosition), ProcessUnit.SuspectPosition.ToString());            Chamber.HighTemperatureHeaterGotoPosition(position);            if (ProcessUnit.HeaterTemp > 0)            {                Chamber.SetHighTemperatureHeaterTemperature(ProcessUnit.HeaterTemp);            }            Chamber.SetHighTemperatureHeaterRatio(ProcessUnit.HeaterRatio);            return RState.Running;        }        private RState HeaterUnit_Check(ProcessUnitBase unit, RecipeStep step)        {            return RState.Running;        }        private void HeaterUnit_End(ProcessUnitBase unit, RecipeStep step)        {        }        public bool LoadMethods(ProcessUnitBase unit)        {            var className = $"{Module}.{unit.GetType().Name}";            if (startHelper.ContainsKey(className) && checkerHelper.ContainsKey(className) && endHelper.ContainsKey(className))            {                unit.starter = startHelper[className];                unit.checker = checkerHelper[className];                unit.end = endHelper[className];                return true;            }            return false;        }        //public void loopStep(bool isloop,int loopCount,int loopIndex)        //{         //    isLoop = isloop;        //    loopsteps=loopCount;        //    currentStepIndex = loopIndex;        //}        private RState stepStarter(RecipeStep step)        {            step.StartStepTimer();            //switch (step.Type)            //{            //    case StepType.EndPoint:            //        Chamber.EPDStepStart(step.EPDConfig, step.StepNo);            //        break;            //}            Chamber.EPDStepStart(step.EPDConfig, step.StepNo);            return RState.Running;        }        private RState stepChecker(RecipeStep step)        {            switch (step.Type)            {                case StepType.Time:                    return step.ElapsedTime() >= step.Time * 1000 ? RState.End : RState.Running;                case StepType.OverEtch:                    return step.ElapsedTime() >= (step.GetLastEPDStepTime() * step.OverEtchPercent / 100) ? RState.End : RState.Running;                case StepType.EndPoint:                    if (step.ElapsedTime() > step.MaxEndPointTime * 1000)                    {                        LOG.Write(eEvent.INFO_PROCESS, Chamber.Module, $"Step:{step.StepNo} timeout, did not capture endpoint signal in {step.MaxEndPointTime} seconds");                        return RState.End;                    }                    else                    {                        return Chamber.EPDCaptured ? RState.End : RState.Running;                    }            }            return RState.Running;        }        private RState stepEnder(RecipeStep step)        {            if (step.Type == StepType.EndPoint)            {                Chamber.EPDStepStop();            }            return RState.End;        }        public bool LoadStepFuns(RecipeStep step)        {            step.starter = stepStarter;            step.checker = stepChecker;            step.ender = stepEnder;            return true;        }    }}
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